Dask-cuDF

E890460

Dask-cuDF is a RAPIDS library that enables distributed, GPU-accelerated DataFrame processing by integrating cuDF with Dask for scalable data analytics.

All labels observed (1)

Label Occurrences
Dask-cuDF canonical 2

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Statements (50)

Predicate Object
instanceOf GPU-accelerated data processing framework
Python library
software library
basedOn Dask
cuDF
compatibleWith Pandas-like DataFrame API via cuDF
developer NVIDIA
linked to: NVIDIA Corporation
documentation https://docs.rapids.ai/api/dask-cudf/stable
ecosystem RAPIDS AI ecosystem
linked to: NVIDIA RAPIDS
genre data analytics library
dataframe library
distributed computing framework
homepage https://rapids.ai
integratesWith Dask
RAPIDS cuGraph
linked to: cuGraph

RAPIDS cuML
linked to: cuML

cuDF
license Apache License 2.0
operatingSystem Linux
optimizedFor NVIDIA GPU hardware
partOf RAPIDS
linked to: NVIDIA RAPIDS
programmingLanguage Python
purpose big data processing on GPUs
distributed GPU-accelerated DataFrame processing
scalable data analytics
repository https://github.com/rapidsai/cudf
requires CUDA-capable GPU
Dask
cuDF
supportsFeature lazy evaluation
multi-GPU scaling
multi-node distributed execution
out-of-core computation
parallel I/O
task scheduling via Dask
supportsFormat CSV
JSON lines
ORC
Parquet
supportsLanguage Python
supportsOperation aggregation
filter
groupby
join
window operations
typicalUseCase distributed feature engineering for machine learning
interactive analytics on large tabular datasets
large-scale ETL on GPUs
uses CUDA
linked to: NVIDIA CUDA

NVIDIA GPUs
linked to: NVIDIA GPU hardware

How these facts were elicited

Referenced by (2)

Full triples — surface form annotated when it differs from this entity's canonical label.

NVIDIA RAPIDS component Dask-cuDF
cuIO supportsIntegration Dask-cuDF